Final Publishable Summary

Size: px
Start display at page:

Download "Final Publishable Summary"

Transcription

1 Final Publishable Summary Task Manager: Dr. Piotr Klimczyk Project Coordinator: Mr. Stefan Siebert Dr. Brockhaus Messtechnik GmbH & Co. KG Gustav-Adolf-Str. 4 D Lüdenscheid +49 (0) (0) fax measurement@brockhaus.com

2 Contents 1. Executive summary Summary of the project context and the main objectives The main S&T results Potential impact and the main dissemination activities Contact details...16

3 1. Executive summary The purpose of this project was to develop a test setup able to characterise magnetic materials when excited with pulsating or rotational fields at high frequency and high flux density under various mechanical conditions. This development will help the European aeronautic partners to have better knowledge on the design criteria of aerospace electrical machines and have a reliable test method to guarantee that the materials will behave as expected in the application at hand. The main objectives of the project, defined as work packages, were to review, design and manufacture test-setup prototypes with the final aim of developing a test systems for both soft and hard magnetic materials, controlled by a central measurement unit. Following proper system calibration and results verification the commissioned setup met the required specification by fulfilling the five main measurement sequences mentioned below: a. Measurement of 1D iron losses using both sinusoidal and non-sinusoidal flux excitation in soft magnetic materials subjected to simultaneous strain (compressive or tensile) and temperature variations: - High frequency sinusoidal up to 20 khz; Amplifier bandwidth up to 100 khz for PWM - Up to 500 MPa in tension - From -40 C to 300 C b. Measurement of magnetostriction under 1D excitation, stress and ambient temperature c. Measurement of 1D iron losses for annular samples compressed radially and axially d. Measurement of 2D iron losses at rotational power loss tester using both sinusoidal and non-sinusoidal flux excitation in soft magnetic materials e. Measurement of iron losses in hard magnetic materials exposed to high frequency counter fields and subjected to compressive strain and temperature variation f. Full characterisation of hard magnetic materials using a hysterograph 1 P a g e

4 2. Summary of the project context and the main objectives. The deviation in performance and efficiency of electrical machines from the expected design values is very much a function of the deviation (from datasheet values) in magnetic properties experienced by the constitutive materials of the machine. Such variations have been the subject of research for many years, with the main concern being permeability and power loss variation upon application of non-ideal mechanical conditions on the electrical steel sheet or under non-sinusoidal (harmonic rich) induction distributions. To date, material is specified and traded against data supplied under the standard measuring techniques as described in international standards (such as IEC 60404) for sinusoidal field magnetization. The growing demand for new, high power density electrical machines is primarily addressed by increasing both current loading and the operating fundamental frequencies of such machines. This will result in a drastic increase in power losses (due to the applied high frequency and high induction fields experienced by the soft and hard magnetic materials), coupled with a drastic increase in the experienced mechanical stresses of both rotating and stationary components (due to higher centrifugal forces in case of the rotor and experienced differential expansions (housing to core) under high thermal gradients for the stator). The conditions experienced by both soft and hard magnetic materials under such operating conditions are therefore far from ideal, rending the most common available data ineffective. A high fidelity system is thus required to be capable of reproducing as far as possible both the electromagnetic and mechanical conditions experienced by the materials used in current, high-power density electrical motor designs for the aerospace application. In summary the developed equipment will thus be able to characterize magnetic materials in terms of B-H characteristics and losses for both soft and hard materials used within the electrical machines developed for the future aerospace needs by fulfilling the following aims: 1. Reproducibility: a. Samples of standard geometry b. Capable to perform all standard tests according to IEC c. Evaluated similar IEC certified equipment 2 P a g e

5 2. High fidelity: a. Measurement of 1D iron losses using both sinusoidal and non-sinusoidal flux excitation in soft magnetic materials subjected to simultaneous stress (compressive or tensile) and temperature variations: - High frequency sinusoidal up to 20 khz; Amplifier bandwidth up to 100 khz for PWM - Up to 500 MPa in tension - From -40 C to 300 C b. Measurement of magnetostriction under 1D excitation, stress and ambient temperature c. Measurement of 1D iron losses for annular samples compressed radially and axially d. Measurement of 2D iron losses at RTP using both sinusoidal and non-sinusoidal flux excitation in soft magnetic materials e. Measurement of iron losses in hard magnetic materials exposed to high frequency counter fields and subjected to compressive strain and temperature variation To achieve the above mentioned goals the project was subdivided into 5 main tasks as described below: Review the existing measuring setups and define the final most relevant parameters and measuring ranges to be covered by the new setups Improve the signal waveform regulation for magnetisation process Design and build a combined one and two dimensional measuring setup Design and build sensors for magnetic characterisation of materials at DC and AC at various frequencies and waveform shapes measurements under applied stress and temperature, Write an operating software for the measuring setup with various sensors 3 P a g e

6 3. The main S&T results Brockhaus Measurements as a world-wide leading manufacturer of measuring systems developed a test setup able to characterise magnetic materials when excited with alternating or rotating fields at high frequency and high flux density. This development was divided in to the main work packages (WP). The foregrounds of the work done in the various work packages are presented in following sections. WP1: Review of test setups and methodologies All measurement methods of magnetic samples testing with existing test setups were reviewed. Based on this review, measurement parameters and conditions were established. WP2: Real time digital wave-form control A digital feedback control algorithm for a various user defined output voltage waveforms was developed such that the output voltage and therefore imposed flux density could be actually controlled to reproduce the following waveforms: Pure sinusoidal up to 20 khz Pulse width modulated (PWM) up to 100 khz of switching frequency Free waveform (user designed waveform) and high harmonics The block diagram of the control loop of the signal waveform feedback is shown in Fig.1 and Fig.2. Fig 1. Schematic diagram of signal waveform control loop 4 P a g e

7 Fig 2. Schematic diagram of PI control The filter inside the loop is used to limit the output signal bandwidth in order to reduce the incurred noise of the signal supplied to the input of the amplifier. The three main control modes and output signal waveforms are shown in Table 1. Table 1. Signal waveform control B and H mode PWM Free Curve 5 P a g e

8 WP3: Design of the combined one and two dimensional measuring setup The central measurement unit as shown in Fig.3 combining one and two dimensional test setup for soft and hard magnetic materials was built. All measurement sensor systems presented in WP4 were connected to this unit to generate, control and measure all the required signals. Fig 3. Central measurement unit WP4: Design of new sensor systems The nine sensor systems were manufactured and developed for soft and hard magnetic materials measurements. The successfully tested sensors are described in the following sections: Epstein Frame Two Epstein frames (shown in Fig.4) with 100 turns,to be used for high frequency measurement, and 700 turns for the low frequency measurements were produced to magnetise a stack of Epstein laminations at DC and AC (wide range of frequencies also including DCbias) magnetic field. Samples will be measured in accordance to the international standard - IEC P a g e

9 Fig 4. Epstein frames for low and high frequencies Magnetostriction and iron loss measurement system A system for magnetostriction and loss measurements under stress on Epstein strips (305 mm x 30 mm) was built. Two accelerometers were employed to measure the required differential acceleration (with one fixed to the sample clamp and other to the system s base). The acquired acceleration thus measured is then integrated twice to arrive to a displacement and thus magnetostriction. The sample s power loss when subjected to the same existing-field conditions was simultaneously measured via a wattmeter / Epstein approach. The magnetic field (H) generated by primary windings was known through the performed current measurement and magnetic flux density estimated via integration of the induced voltage in secondary windings. Both windings were around packet system into which the sample was placed. Two yokes were then used to close the magnetic flux path during the magnetisation process. A load cell with maximum load of 5 kn connected to a pneumatic cylinder is used to control and measure the applied stress to the sample in the range of +500 MPa (tension) to -250 MPa (compression). SST under stress and temperature system A single strip tester (SST) was also built to measure loss of an Epstein strip under tensile and compressive stress when subjected to a wide range of temperatures from -40⁰C to +300⁰C. The whole system (apart from the sample and two yokes) was made out of non-magnetic stainless steel and ceramic parts. Moreover a copper cable with ceramic insulation, withstanding high temperatures up to 300⁰C was used for both primary and secondary turns which are wound around the sample pocket. Iron loss measurement is performed in the same 7 P a g e

10 way as in the magnetostriction setup. An environmental chamber with a temperature control loop is used to supply and control the wide range of temperatures in the sample during magnetisation. A simple stressing system in the form of a screw and a clamp is used to apply stress to the tested sample. A torque meter was used to measure a force applied by the screw. To convert such applied torque (in Nm) to an applied stress (in MPa) in the sample, a single strain gauge fixed to an initial test sample surface (of the same material as that to be tested under the conditions mentioned earlier) was used. The measured values of strain and hence stress (via the material s Young s modulus) were then correlated to the applied Nm on the screw. Radial compression rig A stressing rig was manufactured to apply radial compression to a stack of ring samples. A set of primary and secondary windings were wound on the stack and used to introduce the required magnetic field and measure flux. To protect rings from bending a number of G-clamps with two supporting rings placed on the top and bottom surface of the stack were used. The rig applies compressive stress by tightening of a set of screws placed between aluminium parts. Also between the top surface of the stack and the top protection ring, a set of strain gauges can be placed to measure radial stress in the top ring. Surface compression rig Two rings with slots for windings (Fig.5) were manufactured to apply the uniform stress to the surface of ring samples. A bench press with a load of maximum 50 tons was used to apply stress to the setup. The primary winding will be wound around the 14 big slots and the secondary in 4 small drilled holes are to be wound for field generation and loss measurement. Fig 5. Surface compression system 8 P a g e

11 System for two dimensional measurement A rotational power loss tester (RPT) with a set of 4 yokes with primary windings as shown in Fig.6 was built to magnetise 60 mm x 60 mm samples at two dimensional AC field. A magnetising yoke system is used to generate a magnetic field in any needed direction. By changing the phase shift between two magnetising axes the system induces a rotating flux density vector B within the sample. This flux is measured by two crossing secondary coils wound between the drilled holes in the sample. Fig 6. Rotational power loss tester Electromagnet An electromagnet as shown in Fig.7 with integrated cooling (up to -40⁰C), heating (up to +300⁰C) and compression (up to 500 MPa) systems was built for testing permanent magnets at various environments. In the electromagnet a load is applied by a top pole and a force is measured by a load cell fixed below a bottom pole. Two heating pads fixed between the each 9 P a g e

12 pole and pole cap with attached thermocouple are used to heat the magnet to a certain temperature. A jet-freezer TM jacket, was used and along with the supplied CO 2 to cool the sample to value well below -40 C. The cooling temperature was controlled by a thermocouple place inside the jacket. Fig 7. Electromagnet with integrated temperature and stress systems 10 P a g e

13 Eddy current-induced-loss measurement system for permanent magnets The setup shown in Fig.8 was built to generate an AC magnetic field and measure eddy currents in permanent magnets with various dimensions. The system includes 3 different yoke blocks to adjust the height of the air gap dependent on the thickness of the magnet. Also an increase of a temperature in the magnet due to induced eddy currents is monitored by a thermocouple. Fig 8. Eddy current-induced-loss measurement system for permanent magnets 11 P a g e

14 WP5: Software design The software suits for testing soft magnetic materials in one and two dimensions as well as hard magnetic materials was written, some screen shots of which are shown in Fig.8(a-e). Algorithms for one and two (rotational) dimensional magnetisation were developed to control several types of waveforms up to 20 khz and 5 khz, respectively. Fig 8a. Software set to sinusoidal waveform control for soft magnetic materials Fig 8b. Software set to PWM waveform magnetisation for soft magnetic materials 12 P a g e

15 Fig 8c. Software set to free curve waveform magnetisation for soft magnetic materials Fig 8d. Software set to rotational magnetisation for soft magnetic materials Fig 8e. Hysterograph software for hard magnetic materials 13 P a g e

16 4. Potential impact and the main dissemination activities The results of the measurements undertaken by the equipment delivered as part of this project will help the partners in the JTI to gain a deeper understanding into the behaviour and limiting for the materials making up the new generation high performance electrical machines. The commissioned setup, integrating all the required measurements to be performed on such materials is a European first and as such allows the partners access to all of the required material knowledge to improve the power density and reliability of future electrical machines for the demanding aerospace sector and beyond. This set up allows for the magnetic characterisation of a wide range of material grades and types. These can now be tested for magnetostriction, B-H data, and power loss under various stress, temperature and electro-magnetic excitation conditions. The measured data will have a large impact in the estimation of future electrical motor performance, in that the underlying magnetic properties measured in conditions which closely emulate those expected during actual operation can now be inputted in the design models used. This will allow for: Better loss estimation leading to better thermal models and overall system design Selection of materials with lower magnetostriction when exposed to compressive stress. This will potentially reduce noise emissions from such devices Selection of materials with lower loss even under externally applied stress and/or various temperature Further understanding and the possibility of loss data inclusion for materials under rotational magnetisation (such data is very relevant for inclusion in iron loss models for machines in which cooling comes at a high premium) Characterisation of losses due to eddy currents in permanent magnets and selection of the best grades and types of materials. This would also potentially increase the efficiency of such electric motors, and reduce the power loss especially at the higher frequency operation. Results obtained from this setup already started being published as part of the initial dissemination strategy ( An Investigation into the Geometric Parameters Affecting Field Uniformity in Four Pole Magnetisers to be published in the International Journal of Applied 14 P a g e

17 Electromagnetics and Mechanics (IJAEM) and also presented in the 13 th 1&2DM International Workshop) and results being integrated in new motor designs. The setup, located at the Topic Manager s institution is available to all JTI partners who wish to test and evaluate the electromagnetic properties of the constituent materials of their machine designs. This unhindered availability renders the commissioned setup an important tool in the hands of all the JTI partners and as such provides service at no extra cost which previously did not exist. Such a service, and therefore knowledge-gained allows the JTI partners to remain at the forefront of high performance electrical machine design. 15 P a g e

18 5. Contact details BROCKHAUS MEASUREMENTS Dr. Brockhaus Messtechnik GmbH & Co. KG Gustav-Adolf-Strasse 4 D Lüdenscheid GERMANY Project Coordinator Mr. Stefan Siebert C.E.O. stefan.siebert@brockhaus.com Phone: Mobile: Fax: Task Manager Dr. Piotr Klimczyk Head of R&D piotr.klimczyk@brockhaus.com Phone: Mobile: Fax: P a g e

Measuring Technology for Soft Magnetic Materials

Measuring Technology for Soft Magnetic Materials Measuring Technology for Soft Magnetic Materials Benefit from the economic efficiency and short amortisation period of BROCKHAUS measuring and testing instruments for magnetic materials. Inline measuring

More information

3.1.Introduction. Synchronous Machines

3.1.Introduction. Synchronous Machines 3.1.Introduction Synchronous Machines A synchronous machine is an ac rotating machine whose speed under steady state condition is proportional to the frequency of the current in its armature. The magnetic

More information

Three-Phase Induction Motors. By Sintayehu Challa ECEg332:-Electrical Machine I

Three-Phase Induction Motors. By Sintayehu Challa ECEg332:-Electrical Machine I Three-Phase Induction Motors 1 2 3 Classification of AC Machines 1. According to the type of current Single Phase and Three phase 2. According to Speed Constant Speed, Variable Speed and Adjustable Speed

More information

CHAPTER 6 FABRICATION OF PROTOTYPE: PERFORMANCE RESULTS AND DISCUSSIONS

CHAPTER 6 FABRICATION OF PROTOTYPE: PERFORMANCE RESULTS AND DISCUSSIONS 80 CHAPTER 6 FABRICATION OF PROTOTYPE: PERFORMANCE RESULTS AND DISCUSSIONS 6.1 INTRODUCTION The proposed permanent magnet brushless dc motor has quadruplex winding redundancy armature stator assembly,

More information

Synchronous Machines Study Material

Synchronous Machines Study Material Synchronous machines: The machines generating alternating emf from the mechanical input are called alternators or synchronous generators. They are also known as AC generators. All modern power stations

More information

Linked Electromagnetic and Thermal Modelling of a Permanent Magnet Motor

Linked Electromagnetic and Thermal Modelling of a Permanent Magnet Motor Linked Electromagnetic and Thermal Modelling of a Permanent Magnet Motor D. G. Dorrell*, D. A. Staton, J. Hahout*, D. Hawkins and M. I. McGilp* *Univerity of Glasgow, Glasgow, UK Motor Design Ltd, Tetchill,

More information

5. Transducers Definition and General Concept of Transducer Classification of Transducers

5. Transducers Definition and General Concept of Transducer Classification of Transducers 5.1. Definition and General Concept of Definition The transducer is a device which converts one form of energy into another form. Examples: Mechanical transducer and Electrical transducer Electrical A

More information

Contents. About the Authors. Abbreviations and Symbols

Contents. About the Authors. Abbreviations and Symbols About the Authors Preface Abbreviations and Symbols xi xiii xv 1 Principal Laws and Methods in Electrical Machine Design 1 1.1 Electromagnetic Principles 1 1.2 Numerical Solution 9 1.3 The Most Common

More information

Comparison of Lamination Iron Losses Supplied by PWM Voltages: US and European Experiences

Comparison of Lamination Iron Losses Supplied by PWM Voltages: US and European Experiences Comparison of Lamination Iron Losses Supplied by PWM Voltages: US and European Experiences A. Boglietti, IEEE Member, A. Cavagnino, IEEE Member, T. L. Mthombeni, IEEE Student Member, P. Pillay, IEEE Fellow

More information

PESIT Bangalore South Campus Hosur road, 1km before Electronic City, Bengaluru -100 Department of Electronics & Communication Engineering

PESIT Bangalore South Campus Hosur road, 1km before Electronic City, Bengaluru -100 Department of Electronics & Communication Engineering INTERNAL ASSESSMENT TEST 3 Date : 15/11/16 Marks: 0 Subject & Code: BASIC ELECTRICAL ENGINEERING -15ELE15 Sec : F,G,H,I,J,K Name of faculty : Mrs.Hema, Mrs.Dhanashree, Mr Nagendra, Mr.Prashanth Time :

More information

Generator Advanced Concepts

Generator Advanced Concepts Generator Advanced Concepts Common Topics, The Practical Side Machine Output Voltage Equation Pitch Harmonics Circulating Currents when Paralleling Reactances and Time Constants Three Generator Curves

More information

Electromagnetic and thermal model for Brushless PM motors

Electromagnetic and thermal model for Brushless PM motors 22 December 2017 Motor-CAD Software Tutorial: Electromagnetic and thermal model for Brushless PM motors Contents 1. Description... 1 2. Model Definition... 2 3. Machine Geometry... 3 4. Winding Definition...

More information

T10FS. Data Sheet. Torque Flange. Special features. Installation example T10FS. B en

T10FS. Data Sheet. Torque Flange. Special features. Installation example T10FS. B en T10FS Torque Flange Data Sheet Special features Nominal (rated) torques: 100 NVm, 200 NVm, 500 NVm, 1 knvm, 2 knvm, 3 knvm, 5 knvm, 10 knvm Nominal speed from 12,000 rpm to 24,000 rpm Low rotor weights

More information

A Practical Guide to Free Energy Devices

A Practical Guide to Free Energy Devices A Practical Guide to Free Energy Devices Part PatD14: Last updated: 25th February 2006 Author: Patrick J. Kelly This patent application shows the details of a device which it is claimed, can produce sufficient

More information

Generator Users Group Annual Conference Core testing, low and high flux, tap. Mladen Sasic, IRIS Power

Generator Users Group Annual Conference Core testing, low and high flux, tap. Mladen Sasic, IRIS Power Generator Users Group Annual Conference 2015 Core testing, low and high flux, tap Mladen Sasic, IRIS Power Stator Cores Cores provide low reluctance paths for working magnetic fluxes Support stator winding,

More information

Introduction : Design detailed: DC Machines Calculation of Armature main Dimensions and flux for pole. Design of Armature Winding & Core.

Introduction : Design detailed: DC Machines Calculation of Armature main Dimensions and flux for pole. Design of Armature Winding & Core. Introduction : Design detailed: DC Machines Calculation of Armature main Dimensions and flux for pole. Design of Armature Winding & Core. Design of Shunt Field & Series Field Windings. Design detailed:

More information

Motor-CAD Brushless PM motor Combined electromagnetic and thermal model (February 2015)

Motor-CAD Brushless PM motor Combined electromagnetic and thermal model (February 2015) Motor-CAD Brushless PM motor Combined electromagnetic and thermal model (February 2015) Description The Motor-CAD allows the machine performance, losses and temperatures to be calculated for a BPM machine.

More information

Walchand Institute of Technology. Basic Electrical and Electronics Engineering. Transformer

Walchand Institute of Technology. Basic Electrical and Electronics Engineering. Transformer Walchand Institute of Technology Basic Electrical and Electronics Engineering Transformer 1. What is transformer? explain working principle of transformer. Electrical power transformer is a static device

More information

CHAPTER-III MODELING AND IMPLEMENTATION OF PMBLDC MOTOR DRIVE

CHAPTER-III MODELING AND IMPLEMENTATION OF PMBLDC MOTOR DRIVE CHAPTER-III MODELING AND IMPLEMENTATION OF PMBLDC MOTOR DRIVE 3.1 GENERAL The PMBLDC motors used in low power applications (up to 5kW) are fed from a single-phase AC source through a diode bridge rectifier

More information

UNIT II MEASUREMENT OF POWER & ENERGY

UNIT II MEASUREMENT OF POWER & ENERGY UNIT II MEASUREMENT OF POWER & ENERGY Dynamometer type wattmeter works on a very simple principle which is stated as "when any current carrying conductor is placed inside a magnetic field, it experiences

More information

T40FM. Data Sheet. Torque flange. Special features. Overall concept. B en

T40FM. Data Sheet. Torque flange. Special features. Overall concept. B en T40FM Torque flange Special features Data Sheet - Nominal (rated) torque: 15 kn m, 20 kn m, 25 kn m, 30 kn m, 40 kn m, 50 kn m, 60 kn m, 70 kn m and 80 kn m - Nominal (rated) rotational speed up to 8000

More information

GOVERNMENT COLLEGE OF ENGINEERING, BARGUR

GOVERNMENT COLLEGE OF ENGINEERING, BARGUR 1. Which of the following is the major consideration to evolve a good design? (a) Cost (b) Durability (c) Compliance with performance criteria as laid down in specifications (d) All of the above 2 impose

More information

3. What is hysteresis loss? Also mention a method to minimize the loss. (N-11, N-12)

3. What is hysteresis loss? Also mention a method to minimize the loss. (N-11, N-12) DHANALAKSHMI COLLEGE OF ENGINEERING, CHENNAI DEPARTMENT OF ELECTRICAL AND ELECTRONICS ENGINEERING EE 6401 ELECTRICAL MACHINES I UNIT I : MAGNETIC CIRCUITS AND MAGNETIC MATERIALS Part A (2 Marks) 1. List

More information

UG Student, Department of Electrical Engineering, Gurunanak Institute of Engineering & Technology, Nagpur

UG Student, Department of Electrical Engineering, Gurunanak Institute of Engineering & Technology, Nagpur A Review: Modelling of Permanent Magnet Brushless DC Motor Drive Ravikiran H. Rushiya 1, Renish M. George 2, Prateek R. Dongre 3, Swapnil B. Borkar 4, Shankar S. Soneker 5 And S. W. Khubalkar 6 1,2,3,4,5

More information

System Inputs, Physical Modeling, and Time & Frequency Domains

System Inputs, Physical Modeling, and Time & Frequency Domains System Inputs, Physical Modeling, and Time & Frequency Domains There are three topics that require more discussion at this point of our study. They are: Classification of System Inputs, Physical Modeling,

More information

THE UNDER HUNG VOICE COIL MOTOR ASSEMBLY REVISITED IN THE LARGE SIGNAL DOMAIN BY STEVE MOWRY

THE UNDER HUNG VOICE COIL MOTOR ASSEMBLY REVISITED IN THE LARGE SIGNAL DOMAIN BY STEVE MOWRY THE UNDER HUNG VOICE COIL MOTOR ASSEMBLY REVISITED IN THE LARGE SIGNAL DOMAIN BY STEVE MOWRY The under hung voice coil can be defined as a voice coil being shorter in wind height than the magnetic gap

More information

MAGNETOSCOP Measurement of magnetic field strengths in the range 0.1 nanotesla to 1 millitesla

MAGNETOSCOP Measurement of magnetic field strengths in the range 0.1 nanotesla to 1 millitesla MAGNETOSCOP Measurement of magnetic field strengths in the range 0.1 nanotesla to 1 millitesla Extremely high sensitivity of 0.1 nanotesla with field and gradient probe Measurement of material permeabilities

More information

Target Temperature Effect on Eddy-Current Displacement Sensing

Target Temperature Effect on Eddy-Current Displacement Sensing Target Temperature Effect on Eddy-Current Displacement Sensing Darko Vyroubal Karlovac University of Applied Sciences Karlovac, Croatia, darko.vyroubal@vuka.hr Igor Lacković Faculty of Electrical Engineering

More information

VARIABLE INDUCTANCE TRANSDUCER

VARIABLE INDUCTANCE TRANSDUCER VARIABLE INDUCTANCE TRANSDUCER These are based on a change in the magnetic characteristic of an electrical circuit in response to a measurand which may be displacement, velocity, acceleration, etc. 1.

More information

Inductors & Resonance

Inductors & Resonance Inductors & Resonance The Inductor This figure shows a conductor carrying a current. A magnetic field is set up around the conductor as concentric circles. If a coil of wire has a current flowing through

More information

Stepper Motors WE CREATE MOTION

Stepper Motors WE CREATE MOTION WE CREATE MOTIO PRECIstep Technology EW Page FDM 6 Two Phase with Disc Magnet, AM 8 Two Phase,6 AM Two Phase,6 ADM S Two Phase with Disc Magnet, 6 7 AM Two Phase 6 8 AM Two Phase AM -R Two Phase WE CREATE

More information

CHAPTER 2 STATE SPACE MODEL OF BLDC MOTOR

CHAPTER 2 STATE SPACE MODEL OF BLDC MOTOR 29 CHAPTER 2 STATE SPACE MODEL OF BLDC MOTOR 2.1 INTRODUCTION Modelling and simulation have been an essential part of control system. The importance of modelling and simulation is increasing with the combination

More information

REQUIRED SKILLS AND KNOWLEDGE UEENEEG101A. Electromagnetic devices and circuits. Topic and Description NIDA Lesson CARD # Magnetism encompassing:

REQUIRED SKILLS AND KNOWLEDGE UEENEEG101A. Electromagnetic devices and circuits. Topic and Description NIDA Lesson CARD # Magnetism encompassing: REQUIRED SKILLS AND KNOWLEDGE UEENEEG101A KS01-EG101A Electromagnetic devices and circuits T1 Magnetism encompassing: Topic and Description NIDA Lesson CARD # magnetic field pattern of bar and horse-shoe

More information

Core Losses in Motor Laminations Exposed to High Frequency or Non-Sinusoidal Excitation

Core Losses in Motor Laminations Exposed to High Frequency or Non-Sinusoidal Excitation Core Losses in Motor Laminations Exposed to High Frequency or Non-Sinusoidal Excitation Lotten T Mthombeni, Student Member, IEEE, P. Pillay, Senior Member, IEEE Department of the Electrical & Computer

More information

CHAPTER 2 ELECTROMAGNETIC FORCE AND DEFORMATION

CHAPTER 2 ELECTROMAGNETIC FORCE AND DEFORMATION 18 CHAPTER 2 ELECTROMAGNETIC FORCE AND DEFORMATION 2.1 INTRODUCTION Transformers are subjected to a variety of electrical, mechanical and thermal stresses during normal life time and they fail when these

More information

Induction heating of internal

Induction heating of internal OPTIMAL DESIGN OF INTERNAL INDUCTION COILS The induction heating of internal surfaces is more complicated than heating external ones. The three main types of internal induction coils each has its advantages

More information

Repeatability. ± 0.2 µm ( '') Centrally focused / 639 nm / <1 mw. Temperature range 10 C - 50 C

Repeatability. ± 0.2 µm ( '') Centrally focused / 639 nm / <1 mw. Temperature range 10 C - 50 C Measuring on Machine Tools Technical Data The is a high-end system for dynamic, non-contact tool measurement allowing automatic checks for tool wear or breakage. A focussed laser provides accurate measurement

More information

Page 1 of 6 A Historical Perspective From Aristotle to Hawking Force & Its Effects Measurement Limitations The Strain Gage Sensor Designs Measuring Circuits Application & Installation Process Pressure

More information

INTER PLANT STANDARD STEEL INDUSTRY

INTER PLANT STANDARD STEEL INDUSTRY INTER PLANT STANDARD STEEL INDUSTRY IPSS SPECIFICATION FOR VIBRATION MEASURING SYSTEM FOR LOW SPEED MACHINES (Second Revision) Corresponding IS does not exist IPSS:2-07-027-11 Formerly: IPSS:2-07-027-97

More information

Analysis of Indirect Temperature-Rise Tests of Induction Machines Using Time Stepping Finite Element Method

Analysis of Indirect Temperature-Rise Tests of Induction Machines Using Time Stepping Finite Element Method IEEE TRANSACTIONS ON ENERGY CONVERSION, VOL. 16, NO. 1, MARCH 2001 55 Analysis of Indirect Temperature-Rise Tests of Induction Machines Using Time Stepping Finite Element Method S. L. Ho and W. N. Fu Abstract

More information

I p = V s = N s I s V p N p

I p = V s = N s I s V p N p UNIT G485 Module 1 5.1.3 Electromagnetism 11 For an IDEAL transformer : electrical power input = electrical power output to the primary coil from the secondary coil Primary current x primary voltage =

More information

Outcomes from this session

Outcomes from this session Outcomes from this session At the end of this session you should be able to Understand what is meant by the term losses. Iron Losses There are three types of iron losses Eddy current losses Hysteresis

More information

Overview of IAL Software Programs for the Calculation of Electrical Drive Systems

Overview of IAL Software Programs for the Calculation of Electrical Drive Systems for the Calculation of Electrical Drive Systems Combines FEM with analytical post-processing analytical Machine type Topic Electrically excited Salientpole rotor Synchronous machines Cylindrical rotor

More information

T10F. Data Sheet. Torque Flange. Special features. Installation example T10F. B en

T10F. Data Sheet. Torque Flange. Special features. Installation example T10F. B en T10F Torque Flange Data Sheet Special features Extremely short design High permissible dynamic loads High permissible transverse forces and bending moments Very high torsional stiffness Contactless Selectable

More information

Generalized Theory Of Electrical Machines

Generalized Theory Of Electrical Machines Essentials of Rotating Electrical Machines Generalized Theory Of Electrical Machines All electrical machines are variations on a common set of fundamental principles, which apply alike to dc and ac types,

More information

4. Superconducting sector magnets for the SRC 4.1 Introduction

4. Superconducting sector magnets for the SRC 4.1 Introduction 4. Superconducting sector magnets for the SRC 4.1 Introduction The key components for the realization for the SRC are: the superconducting sector magnet and the superconducting bending magnet (SBM) for

More information

Inductive Analog-Sensors

Inductive Analog-Sensors SENSOREN FÜR AUTOMATION Inductive Analog-Sensors Item group 260 Non-contacting measurement of distance and position -Distance -Displacement -Position -Edge guiding -Concentricity -Centering -Sorting -Counting

More information

Modelling of Electrical Machines by Using a Circuit- Coupled Finite Element Method

Modelling of Electrical Machines by Using a Circuit- Coupled Finite Element Method Modelling of Electrical Machines by Using a Circuit- Coupled Finite Element Method Wei Wu CSIRO Telecommunications & Industrial Physics, PO Box 218, Lindfield, NSW 2070, Australia Abstract This paper presents

More information

1 K Hinds 2012 TRANSFORMERS

1 K Hinds 2012 TRANSFORMERS 1 K Hinds 2012 TRANSFORMERS A transformer changes electrical energy of a given voltage into electrical energy at a different voltage level. It consists of two coils which are not electrically connected,

More information

MDEX. on customized sensors. Technical information. Torque transducer. CS-T-04-MDEX Special features

MDEX. on customized sensors. Technical information. Torque transducer. CS-T-04-MDEX Special features MDEX Torque transducer CS-T-04-MDEX Special features - Explosion proof acc. to ATEX 95 - Exx II 2 G Ex deq IIC T4 - Nominal (rates) torque of 100kNm, 130kNm and 150kNm - HBM Accuracy Class 0,1 - Digital

More information

DIELECTRIC HEATING IN INSULATING MATERIALS AT HIGH DC AND AC VOLTAGES SUPERIMPOSED BY HIGH FREQUENCY HIGH VOLTAGES

DIELECTRIC HEATING IN INSULATING MATERIALS AT HIGH DC AND AC VOLTAGES SUPERIMPOSED BY HIGH FREQUENCY HIGH VOLTAGES DIELECTRIC HEATING IN INSULATING MATERIALS AT HIGH DC AND AC VOLTAGES SUPERIMPOSED BY HIGH FREQUENCY HIGH VOLTAGES Matthias Birle * and Carsten Leu Ilmenau University of technology, Centre for electrical

More information

Inductive versus magnetic position sensors

Inductive versus magnetic position sensors T E C H N I C A L W H I T E P A P E R Inductive versus magnetic position sensors Author: Mark Howard, General Manager, Zettlex UK Ltd File ref: technical articles/inductive vs. magnetic_rev_2.0 w w w.

More information

CAPACITIVE FOR WINDING ELECTRIC MOTORS, TRANSFORMERS AND ELECTRO-MAGNETS

CAPACITIVE FOR WINDING ELECTRIC MOTORS, TRANSFORMERS AND ELECTRO-MAGNETS CAPACITIVE FOR WINDING ELECTRIC MOTORS, TRANSFORMERS AND ELECTRO-MAGNETS The invention relates to a capacitive coil of copper wire that can be used for all electromagnetic energy converters and their inductive

More information

A Practical Guide to Free Energy Devices

A Practical Guide to Free Energy Devices A Practical Guide to Free Energy Devices Part PatD21: Last updated: 29th November 2006 Author: Patrick J. Kelly This patent covers a device which is claimed to have a greater output power than the input

More information

Electronic Instrumentation and Measurements

Electronic Instrumentation and Measurements Electronic Instrumentation and Measurements A fundamental part of many electromechanical systems is a measurement system that composed of four basic parts: Sensors Signal Conditioning Analog-to-Digital-Conversion

More information

HIGH ENERGY RATE FORMING PROCESSES

HIGH ENERGY RATE FORMING PROCESSES HIGH ENERGY RATE FORMING PROCESSES In these forming processes large amount of energy is applied for a very short interval of time. Many metals tend to deform more readily under extra fast application of

More information

VDM Magnifer Material Data Sheet No August 2000 Edition

VDM Magnifer Material Data Sheet No August 2000 Edition VDM Magnifer 7904 Material Data Sheet No. 9004 August 2000 Edition 2 Magnifer 7904 Magnifer 7904 is a soft magnetic nickel-iron alloy with about 80 % nickel, 4.2-5.2 % molybdenum, a saturation induction

More information

T40B. Torque Flange. Special features. Data sheet. Overall concept

T40B. Torque Flange. Special features. Data sheet. Overall concept T40B Torque Flange Special features - Nominal (rated) torques 50 N m, 0 N m, 200 N m, 500 N m, 1 kn m, 2 kn m, 3 kn m, 5 kn m and kn m - Nominal rated rotational speed up to 24000 rpm (depending on nominal

More information

M. Bücker*, M. Magin. Institute for Composite Materials, Erwin-Schrödinger-Straße 58, Kaiserslautern, Germany

M. Bücker*, M. Magin. Institute for Composite Materials, Erwin-Schrödinger-Straße 58, Kaiserslautern, Germany TESTING OF THE STRENGTH OF AN ALTERNATIVE MANUFACTURING METHOD FOR BOLTED JOINTS USED IN A GFRP-ROTOR OF AN AXIAL-FLUX ELEKTRIC MOTOR FOR SERIAL PRODUCTION IN AUTOMOTIVE M. Bücker*, M. Magin Institute

More information

Alternating Current. Slide 1 / 69. Slide 2 / 69. Slide 3 / 69. Topics to be covered. Sources of Alternating EMF. Sources of alternating EMF

Alternating Current. Slide 1 / 69. Slide 2 / 69. Slide 3 / 69. Topics to be covered. Sources of Alternating EMF. Sources of alternating EMF Slide 1 / 69 lternating urrent Sources of alternating EMF Transformers ircuits and Impedance Topics to be covered Slide 2 / 69 LR Series ircuits Resonance in ircuit Oscillations Sources of lternating EMF

More information

Alternating Current. Slide 2 / 69. Slide 1 / 69. Slide 3 / 69. Slide 4 / 69. Slide 6 / 69. Slide 5 / 69. Topics to be covered

Alternating Current. Slide 2 / 69. Slide 1 / 69. Slide 3 / 69. Slide 4 / 69. Slide 6 / 69. Slide 5 / 69. Topics to be covered Slide 1 / 69 lternating urrent Sources of alternating EMF ircuits and Impedance Slide 2 / 69 Topics to be covered LR Series ircuits Resonance in ircuit Oscillations Slide 3 / 69 Sources of lternating EMF

More information

CONSIDERATIONS FOR ACCELEROMETER MOUNTING ON MOTORS

CONSIDERATIONS FOR ACCELEROMETER MOUNTING ON MOTORS SENSORS FOR MACHINERY HEALTH MONITORING WHITE PAPER #49 CONSIDERATIONS FOR ACCELEROMETER MOUNTING ON MOTORS ACCELEROMETER SELECTION AND MOUNTING RECOMMENDATIONS FOR VIBRATION ANALYSIS OF MOTORS IN THE

More information

Reg. No. : BASIC ELECTRICAL TECHNOLOGY (ELE 101)

Reg. No. : BASIC ELECTRICAL TECHNOLOGY (ELE 101) Department of Electrical and Electronics Engineering Reg. No. : MNIPL INSTITUTE OF TECHNOLOGY, MNIPL ( Constituent Institute of Manipal University, Manipal) FIRST SEMESTER B.E. DEGREE MKEUP EXMINTION (REVISED

More information

DC-Voltage fluctuation elimination through a dc-capacitor current control for PMSG under unbalanced grid voltage conditions

DC-Voltage fluctuation elimination through a dc-capacitor current control for PMSG under unbalanced grid voltage conditions DC-Voltage fluctuation elimination through a dc-capacitor current control for PMSG under unbalanced grid voltage conditions P Kamalchandran 1, A.L.Kumarappan 2 PG Scholar, Sri Sairam Engineering College,

More information

Electromagnetic Field Analysis and Motor Testing for the Development of Application Technology of Electrical Steel Sheets

Electromagnetic Field Analysis and Motor Testing for the Development of Application Technology of Electrical Steel Sheets Technical Report UDC 669. 14. 018. 583 : 61. 317. 44 Electromagnetic Field Analysis and Motor Testing for the Development of Application Technology of Electrical Steel Sheets Kiyoshi WAJIMA* Yasuo OHSUGI

More information

VIDYARTHIPLUS - ANNA UNIVERSITY ONLINE STUDENTS COMMUNITY UNIT 1 DC MACHINES PART A 1. State Faraday s law of Electro magnetic induction and Lenz law. 2. Mention the following functions in DC Machine (i)

More information

OPTIFLUX 5000 Technical Datasheet

OPTIFLUX 5000 Technical Datasheet OPTIFLUX 5000 Technical Datasheet Electromagnetic flowmeter in flanged version Exceptional long-term stability and accuracy For highly aggressive and abrasive fluids Fully vacuum-resistant with high-tech

More information

Motor Vibration. Detect Mechanical & Electrical Motor Faults with Vibration Monitoring Instrumentation. IMI Sensors - A PCB Piezotronics Division

Motor Vibration. Detect Mechanical & Electrical Motor Faults with Vibration Monitoring Instrumentation. IMI Sensors - A PCB Piezotronics Division IMI Sensors - A PCB Piezotronics Division Motor Vibration Detect Mechanical & Electrical Motor Faults with Vibration Monitoring Instrumentation visit us at www.pcb.com/imi-sensors Predictive Maintenance

More information

CHAPTER 2 D-Q AXES FLUX MEASUREMENT IN SYNCHRONOUS MACHINES

CHAPTER 2 D-Q AXES FLUX MEASUREMENT IN SYNCHRONOUS MACHINES 22 CHAPTER 2 D-Q AXES FLUX MEASUREMENT IN SYNCHRONOUS MACHINES 2.1 INTRODUCTION For the accurate analysis of synchronous machines using the two axis frame models, the d-axis and q-axis magnetic characteristics

More information

THE UNIVERSITY OF BRITISH COLUMBIA. Department of Electrical and Computer Engineering. EECE 365: Applied Electronics and Electromechanics

THE UNIVERSITY OF BRITISH COLUMBIA. Department of Electrical and Computer Engineering. EECE 365: Applied Electronics and Electromechanics THE UNIVERSITY OF BRITISH COLUMBIA Department of Electrical and Computer Engineering EECE 365: Applied Electronics and Electromechanics Final Exam / Sample-Practice Exam Spring 2008 April 23 Topics Covered:

More information

Therma FM, Ltd. is a Czech producer of wound magnetic cores intended for construction of electrical machines.

Therma FM, Ltd. is a Czech producer of wound magnetic cores intended for construction of electrical machines. Dear customers, Therma FM, Ltd. is a Czech producer of wound magnetic cores intended for construction of electrical machines. We would like to introduce you our new catalogue, which is designed to help

More information

Transformer Technology Seminar What to consider at Design Reviews

Transformer Technology Seminar What to consider at Design Reviews Pomona CA, May 24-25, 2016 Transformer Technology Seminar Siemens AG Transformers siemens.com/answers Why to perform Design Review Meetings? To ensure both parties having the same understanding of the

More information

Ironless Loudspeakers with Ferrofluid Seals

Ironless Loudspeakers with Ferrofluid Seals Ironless Loudspeakers with Ferrofluid Seals Romain Ravaud, Guy Lemarquand, Valérie Lemarquand, Claude Dépollier To cite this version: Romain Ravaud, Guy Lemarquand, Valérie Lemarquand, Claude Dépollier.

More information

Questions on Electromagnetism

Questions on Electromagnetism Questions on Electromagnetism 1. The dynamo torch, Figure 1, is operated by successive squeezes of the handle. These cause a permanent magnet to rotate within a fixed coil of wires, see Figure 2. Harder

More information

MAGNETIC LEVITATION SUSPENSION CONTROL SYSTEM FOR REACTION WHEEL

MAGNETIC LEVITATION SUSPENSION CONTROL SYSTEM FOR REACTION WHEEL IMPACT: International Journal of Research in Engineering & Technology (IMPACT: IJRET) ISSN 2321-8843 Vol. 1, Issue 4, Sep 2013, 1-6 Impact Journals MAGNETIC LEVITATION SUSPENSION CONTROL SYSTEM FOR REACTION

More information

1. Explain in detail the constructional details and working of DC motor.

1. Explain in detail the constructional details and working of DC motor. DHANALAKSHMI SRINIVASAN INSTITUTE OF RESEARCH AND TECHNOLOGY, PERAMBALUR DEPT OF ECE EC6352-ELECTRICAL ENGINEERING AND INSTRUMENTATION UNIT 1 PART B 1. Explain in detail the constructional details and

More information

PART 2 - ACTUATORS. 6.0 Stepper Motors. 6.1 Principle of Operation

PART 2 - ACTUATORS. 6.0 Stepper Motors. 6.1 Principle of Operation 6.1 Principle of Operation PART 2 - ACTUATORS 6.0 The actuator is the device that mechanically drives a dynamic system - Stepper motors are a popular type of actuators - Unlike continuous-drive actuators,

More information

DOCUMENTATION OF INSULATION MEASUREMENTS FOR ELECTRICAL MACHINES

DOCUMENTATION OF INSULATION MEASUREMENTS FOR ELECTRICAL MACHINES FRAUNHOFER INSTITUTE FOR MANUFACTURING TECHNOLOGY AND ADVANCED MATERIALS IFAM DOCUMENTATION OF INSULATION MEASUREMENTS FOR ELECTRICAL MACHINES Processing period: February 2018 September 2018 Michael Gröninger

More information

1 INTRODUCTION 2 MODELLING AND EXPERIMENTAL TOOLS

1 INTRODUCTION 2 MODELLING AND EXPERIMENTAL TOOLS Investigation of Harmonic Emissions in Wound Rotor Induction Machines K. Tshiloz, D.S. Vilchis-Rodriguez, S. Djurović The University of Manchester, School of Electrical and Electronic Engineering, Power

More information

Placement Paper For Electrical

Placement Paper For Electrical Placement Paper For Electrical Q.1 The two windings of a transformer is (A) conductively linked. (B) inductively linked. (C) not linked at all. (D) electrically linked. Ans : B Q.2 A salient pole synchronous

More information

OPTIFLUX 5000 Technical Datasheet

OPTIFLUX 5000 Technical Datasheet OPTIFLUX 5000 Technical Datasheet Electromagnetic flowmeter in flanged version Exceptional long-term stability and accuracy For highly aggressive and abrasive fluids Fully vacuum-resistant with high-tech

More information

HTS PARTIAL CORE TRANSFORMER- FAULT CURRENT LIMITER

HTS PARTIAL CORE TRANSFORMER- FAULT CURRENT LIMITER EEA CONFERENCE & EXHIBITION 2013, 19-21 JUNE, AUCKLAND HTS PARTIAL CORE TRANSFORMER- FAULT CURRENT LIMITER JIT KUMAR SHAM*, UNIVERSITY OF CANTERBURY, CHRISTCHURCH, NEW ZEALAND PROF. PAT BODGER, UNIVERSITY

More information

MAGNETIC 2000 SERIES BEARINGLESS ENCODERS FOR LARGE SHAFTS

MAGNETIC 2000 SERIES BEARINGLESS ENCODERS FOR LARGE SHAFTS MAGNETIC 2000 SERIES BEARINGLESS ENCODERS FOR LARGE SHAFTS Low-maintenance for large shafts Certain motors benefit from having the speed feedback sensor mounted directly on the main shaft. A bearingless

More information

Developments in Electromagnetic Inspection Methods I

Developments in Electromagnetic Inspection Methods I 6th International Conference on NDE in Relation to Structural Integrity for Nuclear and Pressurized Components October 2007, Budapest, Hungary For more papers of this publication click: www.ndt.net/search/docs.php3?mainsource=70

More information

1. Enumerate the most commonly used engineering materials and state some important properties and their engineering applications.

1. Enumerate the most commonly used engineering materials and state some important properties and their engineering applications. Code No: R05310305 Set No. 1 III B.Tech I Semester Regular Examinations, November 2008 DESIGN OF MACHINE MEMBERS-I ( Common to Mechanical Engineering and Production Engineering) Time: 3 hours Max Marks:

More information

Technical Article. Inductive Versus Capacitive Position Sensors. C = A d

Technical Article. Inductive Versus Capacitive Position Sensors. C = A d Technical Article (Ref: ZET13_v1) 9 th June 2011 Inductive Versus Capacitive Position Sensors Some engineers are confused between capacitive and inductive position sensors. Both use a non-contact technique

More information

EE401,EC401,DEE19,DETE19

EE401,EC401,DEE19,DETE19 EE401,EC401,DEE19,DETE19 IV SEMESTER DIPLOMA EXAMINATION, JANUARY 2013 LINEAR & DIGITAL ICs Time: 3 Hours Max. Marks: 75 GROUP A : Answer any three questions. (Question No. 1 is compulsory) Q.1 What is

More information

Vienna University of Technology, Getreidemarkt 9, 1060 Wien, Austria, 2

Vienna University of Technology, Getreidemarkt 9, 1060 Wien, Austria, 2 Dominik Perchtold 1, Manfred Kaltenbacher 1, Hendrik Husstedt 2 1 Vienna University of Technology, Getreidemarkt 9, 1060 Wien, Austria, dominik.perchtold@tuwien.ac.at 2 Deutsches Hörgeräte Institut GmbH,

More information

TRAFTOR WINDINGS CHANGING THE RULES TOROIDAL INDUCTORS & TRANSFORMERS SOLUTIONS PROVIDER AND MANUFACTURER

TRAFTOR WINDINGS CHANGING THE RULES TOROIDAL INDUCTORS & TRANSFORMERS SOLUTIONS PROVIDER AND MANUFACTURER TRAFTOR WINDINGS CHANGING THE RULES TOROIDAL INDUCTORS & TRANSFORMERS SOLUTIONS PROVIDER AND MANUFACTURER PRODUCT RANGE POWER INDUCTORS Toroidal technology, driven by 20 years of R&D. POWER TRANSFORMERS

More information

T40FH. Torque flange. Special features. Data sheet

T40FH. Torque flange. Special features. Data sheet T40FH Torque flange Special features - Nominal (rated) torques: 100kNm, 125kNm, 150kNm, 200kNm, 250kNm, 300kNm - Nominal (rated) rotational speed of 2000 rpm up to 3000 rpm - Compact design - Version for

More information

WATERFLUX 3000 Quick Start

WATERFLUX 3000 Quick Start WATERFLUX 3000 Quick Start Electromagnetic flowmeter The documentation is only complete when used in combination with the relevant documentation for the signal converter. KROHNE CONTENTS WATERFLUX 3000

More information

TECH SHEET PEM - REF / TESTING CLINCH PERFORMANCE. SUBJECT: Testing clinch performance of self-clinching fasteners.

TECH SHEET PEM - REF / TESTING CLINCH PERFORMANCE. SUBJECT: Testing clinch performance of self-clinching fasteners. PEM - REF / TESTING CLINCH PERFORMANCE SUBJECT: Testing clinch performance of self-clinching fasteners. A self-clinching fastener s performance can be divided into two major types. The first is self-clinching

More information

T22. Torque transducer. Special features. Data sheet

T22. Torque transducer. Special features. Data sheet T22 Torque transducer Special features - Nominal (rated) torques 0.5 Nm, 1 Nm, 2 Nm, 5 Nm, Nm, Nm, 50 Nm, 0 Nm, 0 Nm, 500 Nm and 1 knm - Nominal (rated) rotational speed up to 000 rpm (depending on measuring

More information

World-Class Accuracy & Measurement Range (40 Conventional Models)

World-Class Accuracy & Measurement Range (40 Conventional Models) AC/DC CURRENT SENSOR CT6904 Ultra-High Performance AC/DC Current Sensor World-Class Accuracy & Measurement Range (40 Conventional Models) 500 A (rms) Rated for measurement of large currents 4 MHz (±3 db)

More information

Analysis of Losses in High Speed Slotless PM Synchronous Motor Integrated the Added Leakage Inductance

Analysis of Losses in High Speed Slotless PM Synchronous Motor Integrated the Added Leakage Inductance International Conference on Power Electronics and Energy Engineering (PEEE 2015) Analysis of Losses in High Speed Slotless PM Synchronous Motor Integrated the Added Leakage Inductance B.Q. Kou, H.C. Cao

More information

Particulate Control O&M Training. APC/PCUG Conference July 12-16, 2009 The Woodlands, TX

Particulate Control O&M Training. APC/PCUG Conference July 12-16, 2009 The Woodlands, TX Particulate Control O&M Training APC/PCUG Conference July 12-16, 2009 The Woodlands, TX WPCA Particulate Training Seminar July 11, 2009 ESP Power Supply Choices Slide No 1 Precipitator Power Supplies Conventional

More information

ROTOR FAULTS DETECTION IN SQUIRREL-CAGE INDUCTION MOTORS BY CURRENT SIGNATURE ANALYSIS

ROTOR FAULTS DETECTION IN SQUIRREL-CAGE INDUCTION MOTORS BY CURRENT SIGNATURE ANALYSIS ROTOR FAULTS DETECTION IN SQUIRREL-CAGE INDUCTION MOTORS BY CURRENT SIGNATURE ANALYSIS SZABÓ Loránd DOBAI Jenő Barna BIRÓ Károly Ágoston Technical University of Cluj (Romania) 400750 Cluj, P.O. Box 358,

More information

OPTIMUM DESIGN ASPECTS OF A POWER AXIAL FLUX PMSM

OPTIMUM DESIGN ASPECTS OF A POWER AXIAL FLUX PMSM OPTIMUM DESIGN ASPECTS OF A POWER AXIAL FLUX PMSM PAUL CURIAC 1 Key words: High-energy permanent magnets, Permanent magnet synchronous machines, Finite element method analysis. The paper presents an axial

More information

WATERFLUX 3000 Quick Start

WATERFLUX 3000 Quick Start WATERFLUX 3000 Quick Start Electromagnetic flow sensor The documentation is only complete when used in combination with the relevant documentation for the signal converter. KROHNE CONTENTS WATERFLUX 3000

More information

Dynamo Brushless DC Motor and GreenDriveTM Manual

Dynamo Brushless DC Motor and GreenDriveTM Manual Dynamo Brushless DC Motor and GreenDriveTM Manual This manual was developed as a guide for use by FIRST Robotics Teams using Controller Part Number 840205-000 in conjunction with the Nidec Dynamo BLDC

More information